Optical network design and analysis tools: A test of time

IF 1.9 4区 计算机科学 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS
Miquel Garrich Alabarce , Pablo Pavón Mariño
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引用次数: 4

Abstract

Telecom operators' infrastructure is sustained by optical communication networks that provide the means for exchanging large amounts of information, which is essential for many modern society needs. Optical networks are characterized by rapid breakthroughs in a variety of technologies. Relevantly, the last decade encompassed remarkable advances in optical networks’ subfields of signal processing, electronics, photonics, communications, protocols, and control-plane architectures. Hence, these advancements unlocked unprecedented transmission capacities, reconfigurability and programmability, entailing an evolution in the way which networks were designed, planned, and analyzed. In this paper, we review the historical status of optical planning and design tools by focusing on the major enabling technologies and relevant landmarks of the last decade(s). We begin by pinpointing the major breakthroughs in the optical data plane, estimation models capturing the transmission medium behavior and the control plane. We then distil the implications that these advancements entail in the landscape of optical network design and analysis tools, which commonly sit “on top” of the control plane or as a fully separated entity. Then, we speculate with our view for the future, in which automatic validation of optical network operations and dimensioning jointly with learning/artificial intelligence mechanisms will permit zero-touch optical networking: i.e. updating, provisioning, and upgrading network capacities, by means of automation with minimal human intervention. We conclude with a proposal of an architecture that encompasses data and control planes in a comprehensive manner for paving the way towards zero-touch optical networking.

光网络设计分析工具:一个经得起时间考验的工具
电信运营商的基础设施是由光通信网络维持的,光通信网络提供了交换大量信息的手段,这对许多现代社会的需求至关重要。光网络的特点是各种技术的快速突破。与此相关的是,过去十年在光网络的信号处理、电子、光子学、通信、协议和控制平面架构等子领域取得了显著进展。因此,这些进步释放了前所未有的传输能力、可重构性和可编程性,导致了网络设计、规划和分析方式的演变。在本文中,我们回顾了光学规划和设计工具的历史地位,重点介绍了过去十年的主要使能技术和相关里程碑。我们首先指出光学数据平面、捕获传输介质行为的估计模型和控制平面的重大突破。然后,我们提炼出这些进步在光网络设计和分析工具领域所带来的影响,这些工具通常位于控制平面的“顶部”或作为一个完全分离的实体。然后,我们推测了我们对未来的看法,其中光网络运营和维度的自动验证与学习/人工智能机制联合将允许零接触光网络:即更新,供应和升级网络容量,通过自动化的方式,以最少的人为干预。最后,我们提出了一个包含数据和控制平面的综合架构,为零接触光网络铺平了道路。
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来源期刊
Optical Switching and Networking
Optical Switching and Networking COMPUTER SCIENCE, INFORMATION SYSTEMS-OPTICS
CiteScore
5.20
自引率
18.20%
发文量
29
审稿时长
77 days
期刊介绍: Optical Switching and Networking (OSN) is an archival journal aiming to provide complete coverage of all topics of interest to those involved in the optical and high-speed opto-electronic networking areas. The editorial board is committed to providing detailed, constructive feedback to submitted papers, as well as a fast turn-around time. Optical Switching and Networking considers high-quality, original, and unpublished contributions addressing all aspects of optical and opto-electronic networks. Specific areas of interest include, but are not limited to: • Optical and Opto-Electronic Backbone, Metropolitan and Local Area Networks • Optical Data Center Networks • Elastic optical networks • Green Optical Networks • Software Defined Optical Networks • Novel Multi-layer Architectures and Protocols (Ethernet, Internet, Physical Layer) • Optical Networks for Interet of Things (IOT) • Home Networks, In-Vehicle Networks, and Other Short-Reach Networks • Optical Access Networks • Optical Data Center Interconnection Systems • Optical OFDM and coherent optical network systems • Free Space Optics (FSO) networks • Hybrid Fiber - Wireless Networks • Optical Satellite Networks • Visible Light Communication Networks • Optical Storage Networks • Optical Network Security • Optical Network Resiliance and Reliability • Control Plane Issues and Signaling Protocols • Optical Quality of Service (OQoS) and Impairment Monitoring • Optical Layer Anycast, Broadcast and Multicast • Optical Network Applications, Testbeds and Experimental Networks • Optical Network for Science and High Performance Computing Networks
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